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Synthesis of Uniform Mesoporous Zeolite ZSM-5 Catalyst

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Synthesis of Uniform Mesoporous Zeolite ZSM-5 Catalyst ( synthesis-uniform-mesoporous-zeolite-zsm-5-catalyst )

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ChemEngineering 2019, 3, 35 11 of 11 18. Harding, G. X-ray diffraction imaging—A multi-generational perspective. Appl. Radiat. Isot. 2009, 67, 287–295. [CrossRef] [PubMed] 19. Gardy, J.; Hassanpour, A.; Lai, X.; Ahmed, M.H. Synthesis of Ti(SO4)O solid acid nano-catalyst and its application for biodiesel production from used cooking oil. Appl. Catal. A Gen. 2016, 527, 81–95. [CrossRef] 20. Rusu, D.; Rusu, G.; Luca, D. Structural characteristics and optical properties of thermally oxidized zinc films. TC 2011, 100, 101. [CrossRef] 21. Gardy, J. Biodiesel Production from Used Cooking Oil Using Novel Solid Acid Catalysts. Ph.D. Thesis, University of Leeds, Leeds, UK, 2017. 22. Byrappa, K.; Kumar, B.S. Characterization of zeolites by infrared spectroscopy. Asian J. Chem. 2007, 19, 4933. 23. Zhang, Y.; Zhu, K.; Duan, X.; Li, P.; Zhou, X.; Yuan, W. Synthesis of hierarchical ZSM-5 zeolite using CTAB interacting with carboxyl-ended organosilane as a mesotemplate. RSC Adv. 2014, 4, 14471–14474. [CrossRef] 24. Jash, P.; Meaux, K.; Trenary, M. Transmission infrared spectroscopy of ammonia borane. J. Undergrad. Res. 2012, 5. [CrossRef] 25. Oh, H.-S.; Kang, K.-K.; Kim, M.-H.; Rhee, H.-K. Synthesis of MFI-type zeolites under atmospheric pressure. Korean J. Chem. Eng. 2001, 18, 113–119. [CrossRef] 26. Kresge, C.; Leonowicz, M.; Roth, W.; Vartuli, J.; Beck, J. Ordered mesoporous molecular sieves synthesized by a liquid-crystal template mechanism. Nature 1992, 359, 710–712. [CrossRef] 27. Wang, B. Zeolite Deactivation during Hydrocarbon Reactions: Characterisation of Coke Precursors and Acidity, Product Distribution. Ph.D. Thesis, UCL (University College London), London, UK, 2008. 28. Chiche, B.; Finiels, A.; Gauthier, C.; Geneste, P.; Graille, J.; Pioch, D. Friedel-Crafts acylation of toluene and p-xylene with carboxylic acids catalyzed by zeolites. J. Organ. Chem. 1986, 51, 2128–2130. [CrossRef] 29. Chiche, B.; Finiels, A.; Gauthier, C.; Geneste, P. The effect of structure on reactivity in zeolite catalyzed acylation of aromatic compounds: A ρ-σ+ relationship. Appl. Catal. 1987, 30, 365–369. [CrossRef] 30. Topsøe, N.-Y.; Pedersen, K.; Derouane, E.G. Infrared and temperature-programmed desorption study of the acidic properties of ZSM-5-type zeolites. J. Catal. 1981, 70, 41–52. [CrossRef] 31. Tsiatouras, V.A.; Evmiridis, N.P. Study of interactions between ion-exchanged chromium and impregnated vanadium in USY zeolite material. Ind. Eng. Chem. Res. 2003, 42, 1137–1144. [CrossRef] 32. Hidalgo, C.V.; Itoh, H.; Hattori, T.; Niwa, M.; Murakami, Y. Measurement of the acidity of various zeolites by temperature-programmed desorption of ammonia. J. Catal. 1984, 85, 362–369. [CrossRef] 33. Karge, H.G. Comparative measurements on acidity of zeolites. Stud. Surf. Sci. Catal. 1991, 65, 133–156. 34. Botella, P.; Corma, A.; Lopez-Nieto, J.; Valencia, S.; Jacquot, R. Acylation of toluene with acetic anhydride over beta zeolites: Influence of reaction conditions and physicochemical properties of the catalyst. J. Catal. 2000, 195, 161–168. [CrossRef] 35. Ramanathan, A.; Zhu, H.; Maheswari, R.; Subramaniam, B. Novel zirconium containing cage type silicate (Zr-KIT-5): An efficient Friedel-Crafts alkylation catalyst. Chem. Eng. J. 2015, 278, 113–121. [CrossRef] 36. Cirujano, F.G.; Stalpaert, M.; De Vos, D.E. Ionic liquids vs. microporous solids as reusable reaction media for the catalytic C–H functionalization of indoles with alcohols. Green Chem. 2018, 20, 2481–2485. [CrossRef] © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

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